A method of controlling volatilization of silicon based components in a gas turbine engine includes measuring, estimating and/or predicting a variable related to operation of the gas turbine engine; correlating the variable to determine an amount of silicon to control volatilization of the silicon based components in the gas turbine engine; and injecting silicon into the gas turbine engine to control volatilization of the silicon based components. A gas turbine with a compressor, combustion system, turbine section and silicon injection system may be controlled by a controller that implements the control method.
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1. A method of controlling volatilization of silicon based components in a gas turbine engine, the method comprising:
measuring, estimating and/or predicting a variable related to operation of the gas turbine engine;
correlating the variable to determine an effective amount of silicon to control volatilization of the silicon based components in the gas turbine engine;
comparing the effective amount of silicon to a maximum amount of silicon; and
injecting the lesser of the effective amount of silicon and the maximum amount of silicon into the gas turbine engine to control volatilization of the silicon based components.
19. A method of controlling volatilization of silicon based components in a gas turbine engine, the method comprising:
measuring temperature of turbine exhaust gas, fuel flow, water content of the turbine exhaust gas, and a component temperature of the gas turbine engine;
correlating each of the temperature of the turbine exhaust gas, the fuel flow, the water content and the component temperature to determine an effective amount of silicon to control volatilization of the silicon based components in the gas turbine engine; and
injecting the effective amount of silicon into the gas turbine engine to control volatilization of the silicon based components.
20. A gas turbine engine system comprising:
a compressor;
a combustion system;
a turbine section;
an injector adapted to inject silicon into the combustion system; and
a controller, wherein the controller includes programming for:
measuring, estimating and/or predicting a variable related to operation of the gas turbine engine;
correlating the variable to determine an effective amount of silicon to control volatilization of silicon based components in the gas turbine engine;
comparing the effective amount of silicon to a maximum amount of silicon; and
injecting the lesser of the effective amount of silicon and the maximum amount of silicon into the gas turbine engine to control volatilization of the silicon based components.
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This invention was performed under a United States government contract with the Department of Energy, contract number DE-FC26-05NT42643. The Government may have certain rights in the invention.
The subject matter disclosed herein relates to a method and system for controlling volatilization of silicon in a gas turbine engine. The subject matter disclosed herein relates particularly to a method and system for injecting silicon into a gas turbine engine to control volatilization of silicon components.
Ceramic components are the next generation of materials that will enable higher gas turbine efficiencies to be achieved. The main issue with the application of ceramic components in gas turbines is the recession due to hot water vapor present in the flow path of the engine. This recession makes the parts susceptible to failure long before the required service interval.
Environmental Bather Coatings (EBCs) have been applied to silicon ceramic components to allow them to survive in hot and water vapor prone environments. EBCs, which coat the silicon ceramic component, encase the component and effectively seal the component from any water vapor ingestion. This prevents recession on the part. The ceramic components' life depends on the proper function of the EBC during a component service interval. At the service interval the original EBC may be removed a new EBC applied. If the EBC is compromised while the ceramic component is in service, then the life of the ceramic component may be compromised.
U.S. Pat. No. 6,517,341 discusses gas turbine components that can be made from silicon based ceramics, the process why which silicon based ceramic components may erode, and reducing material loss of silicon-containing ceramics and silicon-containing ceramic composites in a combustion gas environment by injecting an effective amount of silicon into said combustion gas environment. However, the method described in U.S. Pat. No. 6,517,341 does not recognize all of the aspects necessary to effectively determine and apply an effective amount of silicon.
For the foregoing reasons, there may be a desire for a new and improved method and system for controlling volatilization of silicon in a gas turbine engine.
Aspects of the system and method of controlling volatilization of silicon based components in a gas turbine engine described herein provide solutions to one or more problems or disadvantages associated with the prior art.
In one exemplary but non-limiting aspect, the present disclosure relates to a method of controlling volatilization of silicon based components in a gas turbine engine. The method comprises measuring, estimating and/or predicting a variable related to operation of the gas turbine engine; correlating the variable to determine an effective amount of silicon to control volatilization of the silicon based components in the gas turbine engine; comparing the effective amount of silicon to a maximum amount of silicon; and injecting the lesser of the effective amount of silicon and the maximum amount of silicon into the gas turbine engine to control volatilization of the silicon based components.
In another exemplary but non-limiting aspect, the present disclosure relates to a method of controlling volatilization of silicon based components in a gas turbine engine. The method comprises measuring temperature of turbine exhaust gas, fuel flow, water content of the turbine exhaust gas, and a component temperature of the gas turbine engine; correlating each of the temperature of the turbine exhaust gas, the fuel flow, the water content and the component temperature to determine an effective amount of silicon to control volatilization of the silicon based components in the gas turbine engine; and injecting the effective amount of silicon into the gas turbine engine to control volatilization of the silicon based components.
In another exemplary but non-limiting aspect, the present disclosure relates to a gas turbine system. The gas turbine system comprises a compressor; a combustion system; a turbine section; an injector adapted to inject silicon into the combustion system; and a controller. The controller includes programming for measuring, estimating and/or predicting a variable related to operation of the gas turbine engine; correlating the variable to determine an effective amount of silicon to control volatilization of the silicon based components in the gas turbine engine; comparing the effective amount of silicon to a maximum amount of silicon; and injecting the lesser of the effective amount of silicon and the maximum amount of silicon into the gas turbine engine to control volatilization of the silicon based components.
One or more specific embodiments of the present disclosure will be described below. In an effort to provide a concise description of these embodiments, all features of an actual implementation may not be described in the specification. It should be appreciated that in the development of any such actual implementation, as in an engineering or design project, numerous implementation-specific decisions are made to achieve the specific goals, such as compliance with system-related and/or business-related constraints, which may vary from one implementation to another. Moreover, it should be appreciated that such effort might be complex and time consuming, but would nevertheless be a routine undertaking of design, fabrication, and manufacture for those of ordinary skill having the benefit of this disclosure.
Detailed example embodiments are disclosed herein. However, specific structural and functional details disclosed herein are merely representative for purposes of describing example embodiments. Embodiments of the present disclosure may, however, be embodied in many alternate forms, and should not be construed as limited to only the embodiments set forth herein.
Accordingly, while example embodiments are capable of various modifications and alternative forms, embodiments thereof are illustrated by way of example in the figures and will herein be described in detail. It should be understood, however, that there is no intent to limit example embodiments to the particular forms disclosed, but to the contrary, example embodiments are to cover all modifications, equivalents, and alternatives falling within the scope of the present disclosure.
The terminology used herein is for describing particular embodiments only and is not intended to be limiting of example embodiments. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. The terms “comprises”, “comprising”, “includes” and/or “including”, when used herein, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
Although the terms first, second, etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another. For example, but not limiting to, a first element could be termed a second element, and, similarly, a second element could be termed a first element, without departing from the scope of example embodiments. As used herein, the term “and/or” includes any, and all, combinations of one or more of the associated listed items.
Certain terminology may be used herein for the convenience of the reader only and is not to be taken as a limitation on the scope of the invention. For example, words such as “left”, “right”, “horizontal”, “vertical”, “downstream”, “forward”, and the like; merely describe the configuration shown in the figures. Indeed, the element or elements of an embodiment of the present disclosure may be oriented in any direction and the terminology, therefore, should be understood as encompassing such variations unless specified otherwise.
As used throughout the specification and claims, “substantially” includes at least deviations from ideal or nominal values that are within manufacturing, operational and/or inspection tolerances. As used throughout the specification, estimating is in reference to a current value and predicting is in reference to a future value.
The present disclosure may be applied to the variety of gas turbine engines that compress an ingested air, such as, but not limiting of, a heavy-duty gas turbine; an aero-derivative gas turbine; or the like. An embodiment of the present disclosure may be applied to either a single gas turbine engine or a plurality of gas turbine engines. An embodiment of the present disclosure may be applied to a gas turbine engine operating in a simple cycle or combined cycle.
The present disclosure details a way to control and operate a gas turbine engine, which may be included in a power plant, with silicon doping. The silicon doping may be part of the main fuel system. The silicon doping may also be separate from the main fuel system so long as the silicon is provided to an appropriate location within the gas turbine engine. This silicon doping is done to slow down the recession of ceramic materials (for example, silicon based non-oxides, such as SiC—SiC Ceramic Matrix Composites) inside the combustion stream of a hot section in the engine due to silicon hydroxide species (SiOH) formation with water molecules formed during combustion processes. Doping the fuel with silicon generates SiOH species in the flow path and saturates the flow field with the molecule, thus retarding the rate of reaction (the driving force) with ceramic components exposed to the flow path. The amount of silicon doping required by the flow path section is proportional to several engine parameters, and as such, can be varied during operation to better use the dopant, which is not recognized in U.S. Pat. No. 6,517,341.
The silicon injection line 24 may be connected to an accessory skid (not illustrated) which contains a pump 26 connected to a silicon doping fluid tank 28 and has controls 30, 32 to control the fuel flow and/or silicon into the combustion chamber 14. For example, the controls 30, 32 may be in the form of valves (as illustrated), a variable frequency drive motor that drives the pump 26 and/or a similar pump (not illustrated) associated with the fuel line 20. The controls 30, 32 and pump 26 may receive controlling input from a main gas turbine control unit 34, which may include sensors or control lines from sensors read several variables that are deemed controlling in the recession rates for ceramic parts inside the turbine engine.
The variables may relate to the gas flow of the engine (inlet guide vane angle position and compressor speed), the temperature in the flow path (exhaust temperature sensors, fuel flow into the combustion system, pyrometer temperature readings), the amount of hydrogen or water present in the flow path (fuel flow, steam injection, type of fuel used) or the amount of ceramic material being degraded in the engine (silicon sensors in the exhaust of the engine system). All these sensors may work in unison with or be part of the main gas turbine control unit 34, where an amount of silicon (or other dopant) required to avoid recession (or slow it down) is calculated and a signal is sent to control the silicon flow into the gas turbine engine 10 via a valve position on control 32 or a speed setting on the pump 26. With an effective amount of silicon (or other dopant) in the system, the ceramic components in the turbine section will not experience recession and thus can operate in a more efficient manner.
As illustrated throughout various figures discussed in detail below, the amount of silicon injected may be limited or bounded by a maximum amount that, in exemplary but non-limiting examples, is not exceeded. For example, the maximum amount of silicon that is injected may be determined so that the injected silicon does not have any detrimental effect on the combustion processes or other processes in the gas turbine engine 10. For example, the amount of silicon injected could be limited such that the efficiency of the engine is not substantially degraded or is not measurably degraded. The amount of silicon injected may be determined based upon turbine clogging. In another example, the amount of silicon injected could be limited based upon the ability of the gas turbine engine 10 to meet particulate emission requirements, which may be variable based upon the system provided for removing particulates (e.g., filter vs. electrostatic removal) and/or may be variable based upon how operating parameters of the gas turbine engine 10 interact with a given particulate removal system. The maximum amount could be a fixed, predetermined amount or the maximum amount could be variable based upon operating conditions of the gas turbine engine 10 that are continuously or periodically monitored. If the effective amount of silicon necessary to control volatilization exceeds the maximum amount, the lower of the two amounts may be injected to provide some level of volatilization control without degrading the output, such as emissions, performance or efficiency, of the gas turbine engine 10.
Based upon the discussion above, two general equations may be used to determine silicon injection. Both equations can be used to determine an effective amount of silicon to be injected.
In a first equation, a coefficient for each measured, estimated and/or predicted variable or parameter is multiplied times a base amount of silicon injection to arrive at an actual amount of silicon injected: Sieffective=Sibase(C1)(C2) . . . (Cn), where Sieffective is the effective amount of silicon, SLbase is a starting amount of silicon to be injected, and Cn is a coefficient that is based upon or correlated to each measured parameter.
In a second equation, an amount of silicon is determined for each variable or parameter, and the sum is injected: Sieffective=Σ(Si1C1+S2C2+ . . . +SinCn), where Sieffective is the effective amount of silicon, Sin is a starting amount of silicon for a given parameter, and Cn is a coefficient that is based upon or correlated to each measured parameter.
While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiment, it is to be understood that the invention is not to be limited to the disclosed embodiment, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
Garcia-Crespo, Andres Jose, Delvaux, John, Dion Ouellet, Noemie
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